In a laboratory experiment, 5.0 g of aluminum metal is exposed to 23.2 g of chlorine gas which resulted to aluminum chloride. (atomic masses: Al = 26.98 g/mol; Cl = 35.45 g/mol) Round your answer in 2 decimal places. How much of the excess reactant was consumed? How much of the excess reactant remained unused?

Chemistry for Engineering Students
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Chapter3: Molecules, Moles, And Chemical Equations
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Problem 3.83PAE: 3.83 For the reaction of nitrogen, N2, and hydrogen, H2, to form ammonia, NH3, a student is...
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In a laboratory experiment, 5.0 g of aluminum metal is exposed to 23.2 g of chlorine gas which resulted to aluminum chloride.

(atomic masses: Al = 26.98 g/mol; Cl = 35.45 g/mol)

Round your answer in 2 decimal places.

How much of the excess reactant was consumed?

How much of the excess reactant remained unused?

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